Lattice Compressibility versus Emission Properties: A Trade‐Off in Zero‐Dimensional Hybrid Bimetallic Halides

J Jiawei Lin (School of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering) X Xingyu Chen S Songhao Guo (Center for High Pressure Science and Technology Advanced Research (HPSTAR)) R Ruonan Yao (Department of Chemistry University of Science and Technology Beijing Beijing 100083 China) C Congcong Chen (Department of Chemistry) P Pan Wang Z Zhongnan Guo (School of Chemistry and Biological Engineering) X Xujie Lü (Center for High Pressure Science and Technology Advanced Research (HPSTAR)) L Lingling Mao (Department of Chemistry)

Abstract

Abstract Hybrid metal halide perovskites exhibit interesting optoelectronic properties that are highly tunable and sensitive via structural manipulation, whether intrinsically designed or induced by pressure stimuli. Their soft lattices are generally easy to compress, where the bulk modulus ( B 0 ) decreases with decreasing dimensionality from 3D to 0D. Here, we show that an unusually large B 0 of 119 GPa beyond 2 GPa can be achieved through the control of coordinated solvent ligand in a 0D hybrid bimetallic bromides series, namely La( L ) n [SbBr 6 ] ( L  = dimethyl sulfoxide, 1‐methylurea, and 1,3‐dimethylurea). We identify a striking inverse relation between B 0 and photoluminescence (PL) under pressure, mediated by hydrogen‐bonding strength. Stronger hydrogen bonds create a more rigid structure (high B 0 ), which causes a rapid quenching of emission. This phenomenon is generally observed in the La( L ) n [SbBr 6 ] series, with all undergoing a universal quenching of PL intensity once a compressibility limit is reached at ∼2 GPa. This work provides a paradigm for controlling the compressibility in low‐dimensional hybrid materials and establishes a fundamental principle regarding the compressibility and optical property evolutions.

Article Details

Volume / Issue Vol. 65, Issue 7
Published February 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

J

Jiawei Lin

School of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering

X

Xingyu Chen

S

Songhao Guo

Center for High Pressure Science and Technology Advanced Research (HPSTAR)

R

Ruonan Yao

Department of Chemistry University of Science and Technology Beijing Beijing 100083 China

C

Congcong Chen

Department of Chemistry

P

Pan Wang

Z

Zhongnan Guo

School of Chemistry and Biological Engineering

X

Xujie Lü

Center for High Pressure Science and Technology Advanced Research (HPSTAR)

L

Lingling Mao

Department of Chemistry